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Automated assessment of diabetic retinal image quality based on clarity and field definition.

机译:根据清晰度和视野清晰度自动评估糖尿病视网膜图像质量。

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PURPOSE: To evaluate the performance of an automated retinal image quality assessment system for use in automated diabetic retinopathy grading. METHODS: Algorithmic methods have been developed for assessing the quality of 45 degrees single field retinal images for use in diabetic retinopathy screening. For this purpose, image quality was defined by two aspects: image clarity and field definition. An image with adequate clarity was defined as one that shows sufficient detail for automated retinopathy grading. The visibility of the macular vessels was used as an indicator of image clarity, since these vessels are known to be narrow and become less visible with any image degradation. An image with adequate field definition was defined as one that shows the desired field of view for retinopathy grading, including the full 45 degrees field of view, the optic disc, and at least two optic disc diameters of visible retina around the fovea. From 489 patients attending a diabetic retinopathy screening program, 1039 retinal images were obtained. The images were graded by a clinician for image clarity and field definition, with a comprehensive image-quality grading scheme. RESULTS: The sensitivity and specificity were, respectively, 100% and 90.9% for inadequate clarity detection, 95.3% and 96.4% for inadequate field definition detection, and 99.1% and 89.4% for inadequate overall quality detection. CONCLUSIONS: The automated system performs with sufficient accuracy to form part of an automated diabetic retinopathy grading system.
机译:目的:评估用于自动化糖尿病性视网膜病变分级的自动化视网膜图像质量评估系统的性能。方法:已经开发出算法方法来评估用于糖尿病性视网膜病筛查的45度单视野视网膜图像的质量。为此,从两个方面来定义图像质量:图像清晰度和场清晰度。具有足够清晰度的图像被定义为显示足够的细节以自动进行视网膜病变分级的图像。黄斑血管的可见度被用作图像清晰度的指标,因为已知这些血管较窄并且在任何图像劣化下变得不那么可见。具有足够视场清晰度的图像被定义为显示视网膜病变分级所需的视场,包括完整的45度视场,视盘和中央凹周围可见视网膜的至少两个视盘直径。从参加糖尿病视网膜病变筛查程序的489位患者中,获得了1039张视网膜图像。临床医师对图像进行了分级,以提供清晰的图像和清晰的视野,并采用了全面的图像质量分级方案。结果:对于清晰度不足的检测,灵敏度和特异性分别为100%和90.9%,对于视野定义不足的检测分别为95.3%和96.4%,对于整体质量检测的不足为99.1%和89.4%。结论:自动化系统具有足够的准确性,以构成糖尿病性视网膜病变自动分级系统的一部分。

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